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What does a number argument in printf without quotes do?

e.g. printf( 3 + "goodbye"); results in output dbye. Why do I get this output?

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this is just code obfuscation that serves nothing else. where did you find such a garbage? –  Jens Gustedt May 20 '13 at 7:48
    
was just going through some net links. True it wont be used anywhere other than dumb mcq tests. –  ajaySekhri May 21 '13 at 4:59

2 Answers 2

up vote 5 down vote accepted

3 + "goodbye" is equivalent to &"goodbye"[3] - in other words it's just a pointer to the fourth element of "goodbye" and so your example will print "dbye".

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That is not a "number argument to printf()", really.The function being called is just getting a single pointer argument, as usual (the first argument to printf() is the format string pointer.

You're simply using pointer arithmetic to increase the pointer to the string "goodbye" with 3 characters, in effect skipping the first three characters and thus getting the remainder "dbye" as the argument.

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